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首页> 外文期刊>Physical Review, A. Atomic, molecular, and optical physics >Two-photon decay rates of hydrogenlike ions revisited by using Dirac-Coulomb Sturmian expansions of the first order
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Two-photon decay rates of hydrogenlike ions revisited by using Dirac-Coulomb Sturmian expansions of the first order

机译:使用一阶Dirac-Coulomb Sturmian展开式重新讨论类氢离子的双光子衰减率

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A fully relativistic multipole scheme is formulated to study two-photon emission processes in hydrogenlike ions with an infinitely heavy, pointlike, and spinless nucleus of charge up to 100. By making use of the Sturmian expansion of the Dirac-Coulomb Green function of the first order constructed by Szmytkowski, closedform expressions are derived for arbitrary multipole channels. In the nonrelativistic limit, well-known formulas established previously are retrieved. For the sake of assessing the effectiveness of our approach, numerical applications are then carried out for two-photon decay rates of the selected 2s_(1/2) and 2p_(1/2) atomic states. To this end, radial integrals, the most crucial quantities involved in the matrix elements, are treated with great care by means of two suitable techniques that agree with each other quite closely so that very accurate values are obtained regardless of the choice of parameters, such as radial quantum numbers and orders of spherical Bessel functions of the first kind. In addition, the convergence and stability of computations are checked in connection with the intermediate-state summation, which appears within the second-order perturbation theory. As expected, the gauge invariance of our fully relativistic multipole numbers is confirmed. Relativistic effects, and the influence of the negative spectrum of the complete set of Dirac-Coulomb Sturmians of first order and retardation truncations in the transition operator are examined. Finally, a comparison is undertaken of our two-photon relativistic calculations with refined predictions of other authors based on finite basis-setmethods widely employed over the past decades.
机译:拟定了一个完全相对论的多极子方案,以研究氢原子中具有无限重,点状和无自旋电荷的原子核,最高可达100的双光子发射过程。利用第一个Dirac-Coulomb Green函数的Sturmian展开由Szmytkowski构造的顺序,可以为任意多极通道导出封闭形式的表达式。在非相对论的范围内,检索先前建立的众所周知的公式。为了评估我们方法的有效性,然后对选定的2s_(1/2)和2p_(1/2)原子态的双光子衰减率进行了数值应用。为此,径向积分是矩阵元素所涉及的最关键的量,通过两种彼此非常吻合的合适技术进行了非常谨慎的处理,因此无论选择何种参数,都可以获得非常准确的值,例如作为第一类球形贝塞尔函数的径向量子数和阶数。另外,结合二阶扰动理论中出现的中间状态求和,检查了计算的收敛性和稳定性。不出所料,我们完全相对论多极数的规范不变性得到了证实。研究了相对论效应以及一阶Dirac-Coulomb Sturmian集合的负谱的影响以及过渡算子中的延迟截断。最后,将我们的双光子相对论计算与其他作者基于过去几十年广泛采用的有限基集方法的精确预测进行了比较。

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